Wei Xinran, Sun Yuhan, Liang Yuzhang, Zou Yi, Novitsky Andrey, Fang Yurui, Peng Wei
School of Physics, Dalian University of Technology, Dalian, 116024, Liaoning, China.
School of Information Science and Technology, ShanghaiTech University, Shanghai, 201210, China.
Sci Rep. 2024 Sep 11;14(1):21190. doi: 10.1038/s41598-024-70948-9.
Asymmetric optical transmission (AOT) has been an enduring hot topic of interest in various fields, including optical communication, information processing, and so on. Particularly, the development of reciprocal micro-nanostructures achieving AOT further facilitates and accelerates the miniaturization and integration of traditional optical components. However, most of these optical components merely consider a single AOT band and transmission in a specified direction, limiting the development of their versatile functions. In this paper, we theoretically propose an all-dielectric metamaterial consisting of a nanograting and a defective multilayer photonic crystal, exhibiting multi-band and bidirectional multiplexing AOT. More specifically, the proposed metamaterial demonstrates both narrowband and wideband AOT for incidence from the nanograting to the photonic crystal, and a completely different narrowband AOT for the opposite incidence, namely, from the photonic crystal to the nanograting. These distinctive AOT spectral features are achieved by matching the diffraction effect of the nanograting with the special energy band of the defective multilayer photonic crystal. Remarkably, the device exhibits a transmittance difference of up to 0.974 and a contrast ratio of up to 0.997 (transmittance ratio of up to 673), with a transmission bandwidth of 62.7 nm for incident light with a wavelength of 624 nm illuminating from the nanograting to the defective multilayer photonic crystal. Furthermore, the bandwidth and number of transmission bands can be flexibly tuned by changing the polarization angle of the incident light, showcasing its excellent polarization multiplexing characteristics. The designed metamaterial provides an effective strategy for the realization of versatile AOT devices and is conducive to expanding the application scenarios of AOT devices.
非对称光学传输(AOT)一直是包括光通信、信息处理等在内的各个领域中备受关注的热门话题。特别是,实现AOT的互易微纳结构的发展进一步推动并加速了传统光学元件的小型化和集成化。然而,这些光学元件大多只考虑单一的AOT波段以及特定方向上的传输,限制了其多功能的发展。在本文中,我们从理论上提出了一种由纳米光栅和缺陷多层光子晶体组成的全介质超材料,它展现出多波段和双向复用AOT。更具体地说,所提出的超材料对于从纳米光栅入射到光子晶体的情况,既展示了窄带又展示了宽带AOT,而对于相反的入射方向,即从光子晶体入射到纳米光栅,则展示了完全不同的窄带AOT。这些独特的AOT光谱特征是通过将纳米光栅的衍射效应与缺陷多层光子晶体的特殊能带相匹配而实现的。值得注意的是,对于波长为624 nm的入射光从纳米光栅照射到缺陷多层光子晶体的情况,该器件的透过率差值高达0.974,对比度高达0.997(透过率比高达673),传输带宽为62.7 nm。此外,通过改变入射光的偏振角,可以灵活调整传输带宽和传输带的数量,展示了其优异的偏振复用特性。所设计的超材料为实现多功能AOT器件提供了一种有效策略,有助于拓展AOT器件的应用场景。